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February 21, 2026Biophysical Journal0 citations

BPS2026 – Assembly and lipid-gating of LRRC8A:D volume-regulated anion channels

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ALAntony LurieUniversity of California, BerkeleyCSChristina A StephensUniversity of California, San FranciscoDKDavid M. KernUniversity of California, Berkeley

Key Points

  • To determine how lrrc8a:d volume-regulated anion channels assemble and their structural features.
  • Used cryo-EM to capture structures of lrrc8a:d VRACs in two conformations.
  • Conducted molecular dynamics simulations to analyze lipid behavior in the channel.
  • Performed electrophysiological experiments to test conduction properties.
  • Identified unique hydrophobic properties in the selectivity filter due to lrrc8d incorporation.
  • Observed lipids bound in the channel pore that affect channel opening dynamics.
  • Confirmed lipid-gating as a blocking mechanism for conduction in closed state.

Abstract

Volume-regulated anion channels (VRACs) are ubiquitously expressed vertebrate ion channels that open in response to hypotonic swelling. VRACs assemble as heteromers of LRRC8A and LRRC8B-E subunits, with different subunit combinations resulting in channels with different properties. Recent studies have described the structures of LRRC8A:C VRACs, but how other VRACs assemble and which structural features are conserved or variant across channel assemblies remain unknown. We used cryo-EM to determine structures of a LRRC8A:D VRAC with a 4:2 subunit stoichiometry, which we captured in two conformations. The presence of LRRC8D subunits widens and increases hydrophobicity of the selectivity filter, which may contribute to the unique substrate selectivity of LRRC8D-containing VRACs. The structures reveal lipids bound inside the channel pore, similar to those observed in LRRC8A:C VRACs. We observe that LRRC8D subunit incorporation disrupts packing of the cytoplasmic LRR domains, increasing channel dynamics and opening lateral intersubunit gaps, which we speculate are necessary for pore lipid evacuation and channel activation. Molecular dynamics simulations show that lipids can reside stably within the pore to close the channel. Using electrophysiological experiments, we confirmed that pore lipids block conduction in the closed state, demonstrating that lipid-gating is a general property of VRACs.

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Cite This Study

Lurie et al. (2026) studied this question.

synapsesocial.com/papers/69990e015b97ab4c14ac2f30https://doi.org/10.1016/j.bpj.2025.11.1512
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